Preparation method and application of glycerol glycolipid compound Gingerglycolipid B

By extracting the glycerol lipid compound Gingerglycolipid B (PF64) from the red-brown tube bacteria Tubeufia rubra PF02-2, the problem of lack of specificity and side effects of existing P-gp inhibitors in the reversal of drug resistance in tumor cells was solved, and the multidrug resistance of MCF-7/ADR breast cancer cells was achieved efficiently reversed, enhancing the anti-cancer effect of doxorubicin.

CN118615298BActive Publication Date: 2025-08-26ZUNYI MEDICAL UNIVERSITY
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Patent Information

Application Number
CN202410654462.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-24
Publication Date
2025-08-26
Estimated Expiration
2044-05-24

AI Technical Summary

Technical Problem

There is a problem of lack of specificity and side effects in clinical applications of existing P-gp inhibitors, which makes it difficult to effectively reverse the drug resistance of tumor cells.

Method used

Gingerglycolipid B (PF64) was extracted from the red-brown tube bacteria Tubeufia rubra PF02-2. The preparation method was used to obtain a compound with efficient reverse drug-resistant tumor cell activity, which was used in combination with doxorubicin to enhance sensitivity to tumor cells.

Benefits of technology

Gingerglycolipid B (PF64) significantly reversed the multidrug resistance of MCF-7/ADR breast cancer cells at different concentrations, with IC50 values ​​lower than doxorubicin, showing significant tumor drug sensitization effect.

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Abstract

The present application relates to the application of a glyceroglycolipid compound Gingerglycolipid B in the field of biochemical application technology in the preparation of a tumor resistance reversal agent or a tumor drug sensitizer. The structure of the glyceroglycolipid compound Gingerglycolipid B is shown as follows: #imgabs0# The drug resistance or tumor drug is doxorubicin. Studies have shown that the compound has the ability to reverse MCF-7 / ADR activity when used in combination with doxorubicin at concentrations of 5, 10, and 20 μg / mL, respectively.
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Description

Technical Field

[0001] The present invention relates to the field of biochemical application technology, and in particular to a preparation method and application of a glyceroglycolipid compound Gingerglycolipid B. Background Art

[0002] Malignant tumors have become a serious threat to human life. The development of drug resistance in tumor cells during cancer treatment is one of the main causes of chemotherapy failure. Tumor cells can develop drug resistance through a variety of mechanisms, including resistance-associated proteins, DNA damage and repair dysfunction, autophagy, reduced drug accumulation and increased drug output, metabolic detoxification, and alterations in drug targets and signaling molecules. P-gp is a major pathway for tumor cell drug resistance. Encoded and expressed by the MDR-1 gene, P-gp is an ATP-driven drug efflux pump that binds to a wide range of drugs, including paclitaxel (PTX), doxorubicin (ADR), and vinblastine, among many commonly used anticancer drugs. Therefore, developing P-gp inhibitors for use in combination with anticancer drugs could increase the sensitivity of tumor cells to these drugs, thereby reversing the activity of drug-resistant tumor cells. Coadministration of P-gp inhibitors with chemotherapeutic drugs could be an effective strategy for overcoming MDR. Several generations of P-gp inhibitors have been developed. First-generation reversal agents include tamoxifen and cyclosporine A, with verapamil and cyclosporine being typical representatives. However, these drugs generally lack specificity for P-glycoprotein and can produce severe side effects, significantly limiting their clinical use (Sato W. et al. 1991). Second-generation reversal agents include sporin analogs such as valspodar (PSC833) and dexverapamil, with dexamethasone being a representative example. However, the development of these second-generation reversal agents is limited by their high toxicity and a range of side effects resulting from drug interactions (Rowinsky EK et al. 1998; Hyafil F. et al. 1993; Keller R et al. 1992). The main representatives of the third-generation P-glycoprotein inhibitors include tariquidar (XR9576), zosuquidar (LY335979), and S9788, with tariquidar (XR9576) and WK-X-34 being the most representative (Massey P R et al. 2014). The development of P-gp inhibitors from natural products and their derivatives has become a new direction and focus of the research and development of fourth-generation inhibitors.

[0003] Natural products derived from microorganisms have long provided high-quality source molecules for new drug development. However, as microbial drug development progresses, the probability of discovering new active natural products from common environments decreases, while the probability of re-discovering known natural products increases. Consequently, attention has turned to microorganisms from specialized habitats. Due to their adaptation to extreme environments, these microorganisms are more likely to develop novel biosynthetic pathways, making them more likely to produce structurally novel natural products. There are specific reports of the development of P-gp inhibitors from natural products derived from microorganisms, but the specific substances involved are unclear.

[0004] To this end, the applicant has conducted a lot of research and discovered a series of new long-chain fatty acid glycerol compounds such as those disclosed in CN113773216A, CN114014898A, and CN114057811A in the early stage, and found that they have applications in reversing the activity of drug-resistant tumor cells. The applicant continues to study the bacteria in order to discover more compounds that have applications in reversing the activity of drug-resistant tumor cells. Summary of the Invention

[0005] In view of the deficiencies of the prior art, the present invention provides a preparation method and application of a biologically derived glycerol glycolipid compound PF64.

[0006] One of the purposes of the present invention is to provide a glyceroglycolipid compound Gingerglycolipid B for use in the preparation of a tumor resistance reversal agent or a tumor drug sensitizer. The structure of the glyceroglycolipid compound Gingerglycolipid B (PF64) is shown in the following formula:

[0007]

[0008] Furthermore, the drug-resistant or tumor drug is doxorubicin.

[0009] Furthermore, the tumor is breast cancer.

[0010] Furthermore, the tumor resistance reversal agent is a transporter pump inhibitor, which has an inhibitory effect on one or more of the drug resistance protein P-glycoprotein and multidrug resistance protein.

[0011] A second object of the present invention is to provide a glyceroglycolipid compound Gingerglycolipid B (PF64) and a pharmaceutical carrier for use in the preparation of an anti-tumor cell agent, wherein the tumor cells are adriamycin-resistant breast cancer cells; the structure of the glyceroglycolipid compound Gingerglycolipid B (PF64) is shown in the following formula:

[0012]

[0013] The third object of the present invention is to provide a method for preparing a glyceroglycolipid compound Gingerglycolipid B (PF64). The structure of the glyceroglycolipid compound Gingerglycolipid B is shown in the following formula:

[0014] The compound is obtained by fermentation and extraction of Tubeufia rubraPF02-2, and the Tubeufia rubraPF02-2 is preserved in the China Center for Type Culture Collection with a preservation number of CCTCC NO: M 2019957.

[0015] The red-brown tube fungus Tubeufia rubra PF02-2 described in the present invention was isolated and obtained by the Biochemical Engineering Center of Guizhou University, and the preservation unit is: China Center for Type Culture Collection, address: Wuhan University, Wuhan, China, preservation date: 2019.11.20, and the preservation registration number is CCTCC NO: M 2019957.

[0016] The sources of Tubeufia rubra PF02-2 are as follows:

[0017] Sampling time: May 14, 2016;

[0018] Sampling location: Pingfeng Rainforest Nature Reserve, Fangchenggang City, Guangxi Zhuang Autonomous Region;

[0019] Sampling method: Decaying wood was collected from the Pingfeng Rainforest Nature Reserve in Fangchenggang City, Guangxi Zhuang Autonomous Region, and brought back to the laboratory in sealed plastic bags.

[0020] The Tubeufia rubra PF02-2 strain of the present invention has the following properties:

[0021] Colony morphology: On natural decaying wood, the colonies are flat, forming a network or dot pattern, often forming sheets when present. Freshly isolated pure PF02-2 colonies are colorless, transparent, or white, while isolated pure PF02-2 colonies are reddish-brown after natural drying. Mycelium is partially buried beneath the substrate, but mostly superficial, consisting of branched, septate hyphae, colorless to dark brown. Conidiophores are cylindrical, solitary, curved, and septate, 50-150 μm long and 4.5-6 μm wide, tapering to a smooth surface. Conidiophores are solitary or multiple, cylindrical, with columnar denticles. Sympodial cells grow from the middle to the apex of the conidiophore, 10-19 μm long and 3-4 μm wide, and are colorless, transparent, to light brown. The conidia are solitary, apically lateral, transparent, with a rounded apex. When tightly coiled, they curl 2-3.5 times, are 35-50 microns in diameter, and have conidial threads 3-5 microns thick (average diameter 45 microns, thickness 4.5 microns). They gradually unfurl in water, have multiple, indistinct septa, are colorless to light brown, and have a smooth surface. Conidia begin to germinate and grow after 12 hours in water-agar medium. Colonies grown in PDA medium at 25-28°C for two weeks can reach 16 mm. They are brown, rounded, and have a rough surface with distinct protrusions and vein-like wrinkles. The colony margins are intact.

[0022] Furthermore, the preparation method includes the following steps: subjecting Tubeufia rubra PF02-2 to liquid or solid fermentation to obtain a fermentation product; extracting the fermentation product, and separating and purifying the obtained extract to obtain a glyceroglycolipid compound Gingerglycolipid B (PF64).

[0023] The specific steps include:

[0024] S1. Strain activation: Take out the preserved strain, inoculate it on the basal culture medium plate, culture it statically to the third generation and then amplify it;

[0025] S2, fermentation culture: take the activated bacteria from step S1 and inoculate them into solid culture medium, and let them ferment at 26-30°C for a period of time;

[0026] S3, extraction: extract the bacterial cells and culture medium, add ethyl acetate for extraction, and concentrate the extract to obtain the fermentation product;

[0027] S4. Pretreatment of fermentation product: dissolve the fermentation product with a solvent of 1:1 chlorine: formaldehyde, and then mix it evenly with silica gel in a mass ratio of 1:1 to 2. After the solvent evaporates, use it as a column sample, then add it to a separation column with silica gel powder and petroleum ether, and use petroleum ether, chloroform, ethyl acetate and methanol in a gradient elution sequence, respectively. After the elution solvent is recovered under reduced pressure on a rotary evaporator, dissolve it with chloroform, acetone or methanol, and then use a thin layer chromatography plate and a developing agent for development. Select the liquid that fluoresces at 254nm or 365nm under an ultraviolet-visible light analyzer, and then use 8% sulfuric acid ethanol vanillin as a color developer to develop the color; combine the ethyl acetate solvent eluate, recover the ethyl acetate solvent, and obtain an ethyl acetate extract;

[0028] S5. Purification and separation: a. Dissolve the ethyl acetate extract in methanol solvent and mix it with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto a pre-column. Use 10% methanol water to equilibrate the reverse phase medium pressure column. Add the sample to the pre-column and elute with methanol water in 10 gradients. After the eluate is recycled by rotary evaporation, dissolve it in methanol and then use a thin layer chromatography plate. Use a developing agent to develop the eluate. Select the liquid that fluoresces at 254 nm or 365 nm under a UV-visible spectrometer. Then combine the components that develop black with 8% ethanolic sulfuric acid and vanillin as a color developer to obtain component Fr.14.

[0029] b. Dissolve component Fr.14 in methanol and mix it evenly with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto the column. Weigh silica gel powder and mix it evenly with a 1:1 solvent of chloroform. Load the mixture into the separation column and use a chloroform system for gradient elution. After the eluate is subjected to a rotary evaporator to recover the solvent, dissolve it in methanol and then use a thin layer chromatography plate for development using a developing agent. Select the liquid that fluoresces at 254 nm or 365 nm under a UV-visible spectrometer. Combine the components that develop black with 8% ethanolic sulfate and vanillin as a color developer to obtain component Fr.14-5.

[0030] c. Dissolve Fr.14-5 in a mixed solvent of dichloromethane and methanol, then mix it evenly with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto the column. Weigh silica gel powder and mix it evenly with a solvent of ethyl acetate:methanol = 50:1, then load it onto a separation column. Elute with an ethyl acetate-methanol system. After recovering the elution solvent, combine the eluted sample using a TLC plate to obtain Fr.14-5-1.

[0031] d. Fr.14-5-1 was purified by reverse phase RP-18 medium pressure column chromatography and eluted with methanol and water to obtain Gingerglycolipid B.

[0032] The solid culture medium in step S2 is oat culture medium, which is obtained by mixing 200 g of oats and 150 mL of double-distilled water.

[0033] The compound of the present invention can be isolated from the fermentation product of Tubeufia rubra PF02-2, and its content is relatively high, making it more suitable for industrial application. At the same time, the study found that the glyceroglycolipid compound Gingerglycolipid B (PF64) has the ability to reverse MCF-7 / ADR activity when used in combination with doxorubicin at concentrations of 5, 10, and 20 μg / mL, respectively. 50 The values ​​were 28.416±0.840, 25.365±1.126 and 22.785±1.267μg / mL respectively. The activity was dose-dependent with the concentration of PF64. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 This is a flow chart for the separation and purification of glyceroglycolipid compound PF64;

[0035] Figure 2 is the mass spectrum of the glyceroglycolipid compound PF64 in the present invention;

[0036] Figure 3 The glycerol glycolipid compound PF64 of the present invention 1 H-NMR spectrum;

[0037] Figure 4 DEPT of the glycerol glycolipid compound PF64 of the present invention and 13 C-NMR spectrum;

[0038] Figure 5 This is the original data for screening the cytotoxic activity of the glyceroglycolipid compound PF64 in the present invention;

[0039] Figure 6 The original data for screening the reversal activity of the glyceroglycolipid compound PF64 on MCF-7 / ADR in the present invention;

[0040] Figure 7 Schematic diagram of the inhibition rate of the glyceroglycolipid compound PF64 on tumor cells MCF-7 / ADR;

[0041] Figure 8 The IC values ​​of doxorubicin at different concentration gradients combined with glyceroglycolipid compound PF64 at concentrations of 5, 10, and 20 μg / mL on MCF-7 / ADM were 50 Values. ns: P > 0.05; *: P < 0.05; **: P < 0.01; ***: P < 0.001; ****: P < 0.0001. DETAILED DESCRIPTION

[0042] The following is further described in detail through specific implementation methods:

[0043] 1. Strain activation

[0044] Remove the strain stored on a glycerol slant from a -80°C freezer, use a sterile inoculating loop to scoop out one loop of the strain Tubeufiarubra PF02-2, inoculate it onto an 11 cm diameter basal medium plate by cross-streaking, and culture it at 28°C for 17 days. Subculture to the third generation before scaling up the culture.

[0045] 2. Fermentation culture

[0046] Oat solid fermentation (1L Erlenmeyer flask filled with 200g oats and 150mL double distilled water), the inoculum size of each bottle was 1×1cm on the culture plate 2 After 105 days of static culture at 28°C, the cells, along with the oatmeal medium, were extracted three times with ethyl acetate, each time with shaking at 160 rpm for 24 hours. The extracts were combined and concentrated under reduced pressure at 40°C to obtain the fermentation product. This process was repeated to obtain 2027.17 g of the combined fermentation product.

[0047] 3. Fermentation product pretreatment

[0048] Dissolve 2027.17 g of the fermentation product with acetone solvent in a ratio of 1:1.5 (i.e., add 3041 g of 200-300 mesh silica gel powder to 2027.17 g of the fermentation product) and mix them evenly. After the solvent evaporates, a river sand sample is obtained, which is used as a column sample. Weigh 6000 g of 200-300 mesh silica gel powder and mix it evenly with petroleum ether solvent (no bubbles can be generated during this process) and load it into a separation column with a length of 1.5 m and an inner diameter of 200 mm. Let the silica gel powder slowly sink until it stops sinking and add a column sample. Use petroleum ether, chloroform, ethyl acetate, and methanol for 4 gradient elutions in sequence, with 2 to 3 samples (approximately 100 samples per column) for each gradient elution. The method comprises the steps of: eluting the sample using 36 L to 54 L of elution solvent per column volume (36 L to 54 L of elution solvent) and collecting each 1000 mL of elution solvent as a portion; recovering each eluted sample on a rotary evaporator under reduced pressure, dissolving it in 10 or 15 mL of chloroform, acetone or methanol, transferring it to a 20 mL vial, spotting the plate with thin layer chromatography (TLC) using a developing solvent of petroleum ether:chloroform = 1:1, petroleum ether:acetone = 10:1, chloroform:acetone = 5:1, chloroform:methanol = 10:1, or ethyl acetate:methanol = 5:1; observing the fluorescence at 254 nm or 365 nm under a conventional ultraviolet-visible light analyzer, and then developing the color using 8% ethanolic sulfuric acid and vanillin as a color developer; combining the ethyl acetate solvent eluates, recovering the ethyl acetate solvent, and obtaining 61.4 g of ethyl acetate.

[0049] 4. Purification and separation

[0050] The ethyl acetate layer extract (61.4 g) was dissolved in methanol solvent and mixed evenly with silica gel at a mass ratio of about 1:1.5 (i.e., medium-pressure RP-18 reverse-phase silica gel was added to 100 g of fermentation product). After the solvent evaporated, a river sand sample was obtained, which was used as the column sample; a pre-column with a length of 10 cm and a diameter of 49 mm was added to the column sample; a reverse-phase medium-pressure column (column length 460 mm, diameter 49 mm) was equilibrated with 10% methanol water, and after equilibration for about 5 to 6 column volumes (approximately elution 5 to 6 L), a sample-containing pre-column was added, and a methanol-water gradient elution (10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%) was used for 10 steps in sequence. Gradient elution, each gradient elution was 4-5 column volumes, and a 500 mL conical flask was used to receive the eluate. After each eluate was subjected to a rotary evaporator to recover the solvent, it was dissolved in 10 mL of methanol and transferred to a 20 mL penicillin bottle. The plate was then spotted by TLC using petroleum ether: acetone = 2:1, chloroform: acetone = 5:1, chloroform: methanol = 10:1, and ethyl acetate: methanol = 2:1 as developing agents. The fluorescence at 254 nm or 365 nm was observed under a conventional UV-visible analyzer, and then 8% ethanolic sulfate vanillin was used as a color developer for color development. The components that showed black color with 8% ethanolic sulfate vanillin (that is, the components eluted with 80% methanol water) were combined to obtain the 14th component (Fr.14 9.23 g).

[0051] Component Fr.14 (9.23 g) was dissolved in methanol solvent and mixed evenly with 200-300 mesh silica gel at a mass ratio of about 1:1.5 (i.e., 14 g was added to 9.23 g of the component). After the solvent evaporated, a river sand sample was obtained, which was used as the column sample; 300 g of 200-300 mesh silica gel powder was weighed and mixed evenly with a 1:1 solvent of chloroform (no bubbles were generated during this process) and loaded into a separation column with a length of 460 mm and an inner diameter of 100 mm. The silica gel powder was allowed to slowly sink until it stopped sinking, and a column sample was added once. A chloroform system gradient elution (50:1, 30:1, 15:1, 10:1, 5:1, 2:1) was used for each column. The product was eluted with a gradient of 3-4 column volumes (approximately 1.8 L-2.4 L), and the eluate was collected in a 150 mL conical flask. After the solvent of each eluate was recovered by a rotary evaporator, it was dissolved with approximately 10 mL of methanol and transferred to a 20 mL cillin bottle. The product was then subjected to TLC and developed with chloroform:acetone = 2:1, chloroform:methanol:formic acid = 5:1:1 drops, and ethyl acetate:methanol = 3:1 as a developing agent. The product was observed under a conventional UV-visible analyzer for fluorescence at 254 nm or 365 nm, and then developed with 8% ethanolic sulfate vanillin as a color developer. The components that showed black color with 8% ethanolic sulfate vanillin were combined to obtain the fifth component (Fr.14-5 358 mg).

[0052] Fr.14-5 (358 mg) was dissolved in an equal volume of dichloromethane and methanol, and mixed evenly with silica gel in a mass ratio of about 1:1.5 (i.e., 540 mg of 200-300 silica gel was added to 358 g of the component). After the solvent evaporated, a river sand sample was obtained, which was used as the column sample; 90 g of 200-300 mesh silica gel powder was weighed and mixed evenly with ethyl acetate: methanol = 50:1 solvent (no bubbles were generated during this process) and loaded into a separation column with a length of 260 mm and an inner diameter of 20 mm. The silica gel powder was allowed to slowly sink until it stopped sinking, and the column sample was added once. The column was eluted using an ethyl acetate-methanol system (50:1→30:1, v / v). The eluate was collected in a 50 mL conical flask, the elution solvent was recovered, dissolved in methanol and transferred to a 20 mL penicillin bottle, and combined using a TLC spot plate to obtain Fr.14-5-1 (52 mg). Fr.15-3-1 (52 mg) and Fr.3-15-5-1 (52 mg) were purified by reverse phase RP-18 medium pressure column chromatography and eluted with methanol and water (80:20→100:0, v / v) to obtain compound Gingerglycolipid B (27.3 mg).

[0053] 4. PF64 spectral data of glycerol glycolipid compounds

[0054]

[0055] Gingerglycolipid B (PF64): HR-ESI-MS m / z 701.36981 [M+Na]+, molecular weight C33H58O14Na; 1H NMR (500MHz, Methanol-d4) δ 5.28-5.38 (4H, m, H-9′″, 10′″, 12′″, 13′″), 4.86 (1H, br s,H-1″),4.24(1H,d,J=7.4Hz,H-1′),4.14(2H,dd,J=5.3,3.3Hz,H-3),3.98(1H,m,H-2),3.82-3.91(5H,m,H-1β ,4′,2″,4″,6′β),3.69-3.79(5H,m,H-5′,5″,3″,6″),3.65(2H,dd,J=10.5,4.6Hz,H-1α,6α),3.54(1H,m,H-2′), 3.50(1H,m,H-3′),2.77(2H,t,J=6.5Hz,H-11′″),2.35(2H,t,J=7.5Hz,H-2′″),2.06(4H,m,H-8′″,14′″),1.61( 13C NMR (126MHz, Methanol-d4) δ175.5(s,C-1′″),130.9(d,C-9′″),130.9(s,C-13′″),129.1(d,C-10′″),129.0(d,C-12′″),105.3(d,C-1′ ),100.5(d,C-1″),74.7(d,C-3′),74.6(d,C-5′),72.6(d,C-2′),72.5(d,C-5″),72.1(t,C-1),71.4(d,C-3″),71.0(d,C-4″),70.2(d,C -2),70.1(d,C-4′),69.7(d,C-2″),67.8(t,C-6′),66.6(t,C-3),62.7(t,C-6″),34.9(t,C-2′″),32.7(t,C-16′″),30.7(t,C-15′″),30 .5(t,C-6′″),30.3(t,C-4′″),30.2(t,C-7′″),30.2(t,C-5′″),28.2(t,C-8′″),28.2(t,C-14′″),26.5(d,C-11′″),26.0(t,C-3′″),23.6 (t, C-17′″), 14.4 (q, C-18′″); the above data are consistent with the data of compound Gingerglycolipid B reported in the literature.

[0056] 5. Screening of PF64 Cytotoxicity of Glycerol Glycolipid Compounds

[0057] 5.1 Test cell line: MCF-7 / ADR (purchased from Shanghai Meixuan Biotechnology Co., Ltd. in May 2021)

[0058] 5.2RPMI1640+10% fetal bovine serum

[0059] 5.3 Cell culture

[0060] 5.3.1 Cell recovery

[0061] Remove the cells from the liquid nitrogen tube and quickly thaw the cryovial in a preheated 37°C water bath. Shake the tube constantly to melt the liquid. Once approximately 1 mL of the liquid in the cryovial is completely dissolved, remove the cells under sterile conditions and inoculate them into a cell culture dish (RPMI1640 + 10% fetal bovine serum). Incubate in a 37°C CO2 incubator. Change the culture medium the next day, continue culturing, and observe growth.

[0062] 5.3.2 Cell Passaging

[0063] After the cells have grown to 80-90%, aseptically remove the cell culture medium using a 3mL plastic pipette. Rinse once with 1-2mL of PBS (calcium- and magnesium-free). Add 1mL of digestion solution (0.25% Trypsin-0.53mM EDTA) to the culture flask and observe the cell digestion under an inverted microscope. If the cells are mostly rounded, quickly return the flask to the operating table, tap the culture flask several times, and add 2mL of complete culture medium to terminate the digestion. Add 4mL of new complete culture medium to each new culture flask, followed by 1mL of complete culture medium containing the cells.

[0064] 5.4 CCK-8 cytotoxicity assay

[0065] 5.4.1 Concentration gradient: 0, 1.6, 3.125, 6.25, 12.5, 25, 50, 100 μg / mL, 3 replicates

[0066] Positive control: doxorubicin

[0067] Negative control: DMSO

[0068] 5.4.2 Experimental steps

[0069] (1) Cell digestion, cell counting, and adjusting the cell concentration to 2×104 pieces / mL.

[0070] (2) Inoculate 100 μL of the cell suspension in a 96-well plate and incubate the plate in a 5% CO 2 incubator at 37° C. for 24 h.

[0071] (3) According to the groups, different concentrations of compounds and doxorubicin were added and the cells were incubated in an incubator at 37°C for 48 h.

[0072] (4) After the incubation period, the cells were rinsed once with PBS (without calcium and magnesium ions), 10 μL of CCK-8 reagent was added to each well, and the cells were incubated in an incubator for 3 h.

[0073] (5) Measure the absorbance at 490 nm using an enzyme-labeled instrument

[0074] 5.4 Experimental Results

[0075] Activity screening results: Gingerglycolipid B (PF64) has an inhibition rate of less than 20% on doxorubicin-resistant breast cancer cells (MCF-7 / ADR) at a concentration of no more than 25 μg / mL. The next step of tumor cell reversal screening can be continued. The results are detailed in Figure 7 .

[0076] 6. Application of the Glycerol Glycolipid Compound PF64 in Reversing the Activity of MCF-7 / ADR Tumor Cells

[0077] 6.1 Test cell line: MCF-7 / ADR (purchased from Shanghai Meixuan Biotechnology Co., Ltd. in May 2021)

[0078] 6.2RPMI1640+10% fetal bovine serum

[0079] 6.3 Cell culture

[0080] 6.3.1 Cell recovery

[0081] Remove the cells from the liquid nitrogen tube and quickly place the cryovial in a water bath preheated to 37 degrees to thaw quickly. Shake continuously to melt the liquid in the tube quickly. After about 1 mL of the liquid in the cryovial is completely dissolved, remove the cells under sterile conditions and inoculate them into a cell culture dish (RPMI1640 + 10% fetal bovine serum). Place the dish in a 37-degree CO2 incubator and culture. Change the culture medium the next day and continue culturing to observe the growth.

[0082] 6.3.2 Cell Passaging

[0083] After the cells have grown to 80-90%, aseptically remove the cell culture medium using a 3mL plastic pipette. Rinse once with 1-2mL of PBS (calcium- and magnesium-free). Add 1mL of digestion solution (0.25% Trypsin-0.53mM EDTA) to the culture flask and observe the cell digestion under an inverted microscope. If the cells are mostly rounded, quickly return the flask to the operating table, gently tap the flask several times, and add 2mL of complete culture medium to terminate the digestion. Add 4mL of new complete culture medium to each new flask, followed by 1mL of complete culture medium containing the cells.

[0084] 6.4 CCK-8 assay for reversal of tumor cytotoxic activity

[0085] 6.4.1 Doxorubicin concentration gradient: 0, 1.6, 3.125, 6.25, 12.5, 25, 50 μg / mL, 3 replicates

[0086] Test compound Gingerglycolipid B (PF64) concentration: 5, 10, 20 μg / mL

[0087] Positive control: Verapamil

[0088] Negative control: DMSO

[0089] 6.4.2 Experimental steps

[0090] (1) Cell digestion, cell counting, and adjusting the cell concentration to 2×10 4 pieces / mL.

[0091] (2) Inoculate 100 μL of the cell suspension in a 96-well plate and incubate the plate in a 5% CO 2 incubator at 37° C. for 24 h.

[0092] (3) According to the grouping, different concentrations of compounds and doxorubicin were added and the cells were incubated in an incubator at 37°C for 48 h.

[0093] (4) After the incubation period, the cells were rinsed once with PBS (without calcium and magnesium ions), 10 μL of CCK-8 reagent was added to each well, and the cells were incubated in an incubator for 3 h.

[0094] (5) Measure the absorbance at 490 nm using an enzyme-labeled instrument

[0095] 6.4 Experimental Results

[0096] The IC values ​​of Gingerglycolipid B (PF64) at concentrations of 5, 10, and 20 μg / mL were 50The values ​​were 28.416±0.840, 25.365±1.126, and 22.785±1.267, respectively, which were comparable to the IC values ​​of the negative control doxorubicin. 50 The value (47.637±5.157) was significantly lower than that of doxorubicin under the three concentration conditions, indicating that the compound Gingerglycolipid B (PF64) significantly increased the sensitivity of MCF-7 / ADM to the anticancer drug doxorubicin when used in combination with doxorubicin at the three concentration gradients, and the one-way analysis of variance showed that they were extremely statistically significant (P<0.0001); compared with the positive drug group, the reversal activity of the compound at the three concentration gradients was not as good as the positive control. Figure 8 And Table 1.

[0097] Table 1: Compound PF64 reversed the activity of tumor cells A549 / ADR at concentrations of 5, 10, and 20 μg / mL

[0098]

[0099] The above is only an embodiment of the present invention, and the common knowledge such as the specific structure and characteristics of the scheme is not described in detail here. It should be pointed out that for those skilled in the art, without departing from the structure of the present invention, several variations and improvements can be made, which should also be regarded as the scope of protection of the present invention, and these will not affect the effect of the implementation of the present invention and the practicality of the patent. The scope of protection required by this application shall be based on the content of its claims, and the specific implementation methods and other records in the specification can be used to interpret the content of the claims.

Claims

1. Use of a glyceroglycolipid compound Gingerglycolipid B in the preparation of a tumor resistance reversal agent or a tumor drug sensitizer. The structure of the glyceroglycolipid compound Gingerglycolipid B is shown in the following formula: The drug in the tumor drug resistance reversal agent or the drug in the tumor drug sensitizer is doxorubicin, and the tumor is breast cancer.

2. A method for preparing Gingerglycolipid B, characterized by: The structure of the glyceroglycolipid compound Gingerglycolipid B is shown below: The compound is obtained by fermentation and extraction of Tubeufia rubra. The Tubeufia rubra is named Tubeufia rubra PF02-2, and the preservation unit is China Center for Type Culture Collection, with a preservation number of CCTCC NO: M 2019957.

3. The method for preparing the compound according to claim 2, wherein: The following steps are involved: Tubeufia rubra PF02-2 is subjected to liquid or solid fermentation culture to obtain a fermentation product; the fermentation product is extracted, and the obtained extract is separated and purified to obtain a glyceroglycolipid compound Gingerglycolipid B.

4. The method for preparing the compound according to claim 3, wherein: The specific steps include: S1. Strain activation: Take out the preserved strain, inoculate it on the basal culture medium plate, culture it statically to the third generation and then amplify it; S2, fermentation culture: take the activated bacteria from step S1 and inoculate them into solid culture medium, and ferment them at 26-30°C for a period of time; S3, extraction: extract the bacterial cells and culture medium, add ethyl acetate for extraction, and concentrate the extract to obtain the fermentation product; S4. Pretreatment of fermentation product: dissolve the fermentation product in a solvent of dichloromethane:methanol = 1:1, and then mix it evenly with silica gel in a mass ratio of 1:1-2. After the solvent evaporates, use it as a sample for the first column, and then add it to a separation column with silica gel powder and petroleum ether. Use petroleum ether, chloroform, ethyl acetate and methanol in a gradient elution sequence, respectively. After the elution solvent is recovered under reduced pressure on a rotary evaporator, dissolve it in chloroform, acetone or methanol, and then use a thin layer chromatography plate and a developing agent for development. Select the liquid that fluoresces at 254nm or 365nm under an ultraviolet-visible light analyzer, and then use 8% sulfuric acid ethanol vanillin as a color developer to develop the color; combine the ethyl acetate solvent eluate, recover the ethyl acetate solvent, and obtain an ethyl acetate extract; S5. Purification and separation: a. Dissolve the ethyl acetate extract in methanol solvent and mix it with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto a pre-column. Use 10% methanol water to equilibrate the reverse phase medium pressure column. Add the sample to the pre-column and elute with methanol water in 10 gradients. After the eluate is recycled by rotary evaporation, dissolve it in methanol and then use a thin layer chromatography plate. Use a developing agent to develop the eluate. Select the liquid that fluoresces at 254 nm or 365 nm under a UV-visible spectrometer. Then combine the components that develop black with 8% ethanolic sulfuric acid and vanillin as a color developer to obtain component Fr.

14. b. Dissolve component Fr.14 in methanol and mix it evenly with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto the column. Weigh silica gel powder and mix it evenly with a solvent of dichloromethane:methanol = 1:

1. Load the mixture into the separation column and use a dichloromethane:methanol gradient elution. After the eluate is subjected to a rotary evaporator to recover the solvent, dissolve it in methanol and then use a thin layer chromatography plate for development using a developing agent. Select the liquid that fluoresces at 254nm or 365nm under a UV-visible spectrometer. Combine the components that develop black with 8% ethanolic sulfate and vanillin as a color developer to obtain component Fr.14-5. c. Dissolve Fr.14-5 in a mixed solvent of dichloromethane and methanol, then mix it evenly with silica gel in a mass ratio of 1:1 to 3. After the solvent evaporates, load the sample onto the column. Weigh silica gel powder and mix it evenly with a solvent of ethyl acetate:methanol = 50:1, then load it onto a separation column. Elute with an ethyl acetate-methanol system. After recovering the elution solvent, combine the eluted sample using a TLC plate to obtain Fr.14-5-1. d. Fr.14-5-1 was purified by reverse phase RP-18 medium pressure column chromatography and eluted with methanol and water to obtain Gingerglycolipid B.

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